Squeezed single-atom laser in a photonic crystal
Rong Tan, Gao-xiang Li, Zbigniew Ficek

TL;DR
This paper investigates a single-atom laser within a photonic crystal, revealing non-linear effects, quadrature squeezing below shot noise, and linewidth narrowing due to frequency-dependent reservoirs and non-secular dynamics.
Contribution
It introduces a dressed atom model with non-secular terms to analyze cavity field properties, uncovering new squeezing and linewidth narrowing phenomena in a photonic crystal environment.
Findings
Quadrature squeezing below shot noise limit.
Linewidth narrowing below quantum limit.
Non-linear cavity field behavior due to non-secular terms.
Abstract
We study non-classical and spectral properties of a strongly driven single-atom laser engineered within a photonic crystal that facilitates a frequency-dependent reservoir. In these studies, we apply a dressed atom model approach to derive the master equation of the system and study the properties of the dressed laser under the frequency dependent transition rates. By going beyond the secular approximation in the dressed-atom cavity field interaction, we find that if, in addition, the non-secular terms are included into the dynamics of the system, then non-linear processes can occur that lead to interesting new aspects of cavity field behavior. We calculate variances of the quadrature phase amplitudes and the incoherent part of the spectrum of the cavity field and show that they differ qualitatively from those observed under the secular approximation. In particular, it is found that the…
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